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D I Kerr

Publications and source records attributed to D I Kerr.

At least 37 records · Page 2Linked to original sources

Hyperexcitability in CA1 of the rat hippocampal slice following hypoxia or adenosine.

Participation of adenosine receptors in the depression of synaptic transmission during hypoxia, and the production of multiple populations spikes in the pyramidal neurons following hypoxia, has been investigated in the CA1 area of the rat hippocampal slice. A method is presented for analysing such hyperexcitability, using input/output curves of the second population spike. This method provides evidence that rebound hyperexcitability following hypoxia or prolonged adenosine-mediated inhibition results from an increase in excitability of the CA1 pyramidal neurons rather than from an increase in excitatory neurotransmitter release. Hypoxia-induced depression of the synaptic components of evoked field potentials was blocked in a concentration dependent manner by the selective A1 receptor antagonist 8-cyclopentyltheophylline (8-CPT), demonstrating extracellular accumulation of adenosine during hypoxia. Upon reoxygenation of slices following 30 min hypoxia, multiple population spikes were evoked by a single orthodromic stimulus in slices that exhibited only a single population spike prior to hypoxia. Such post-hypoxic hyperexcitability was not prevented by superfusion of slices with 8-CPT during hypoxia. Depression of synaptic transmission by 30 min superfusion of slices with 50 microM adenosine was also followed, upon washout, by the appearance of multiple population spikes. However, such hyperexcitability could not be produced by superfusion with adenosine analogues selective for A1 receptors, cyclopentyladenosine, selective for A2a receptors, 2-p-(2-carboxyethyl)phenetheylamino-5'-ethylcarboxamidoadenosine (CGS 21680), or active at A2a and A2b receptors, N6-[2-(3,5-dimethoxyphenyl)-2-(2-methylphenyl)ethyl]adenosine, suggesting that adenosine receptors other than the A1, A2a or A2b subtypes are involved in its generation.

Adenosine↗

GABAB receptors.

GABAB receptors are a distinct subclass of receptors for the major inhibitory transmitter 4-aminobutanoic acid (GABA) that mediate depression of synaptic transmission and contribute to the inhibition controlling neuronal excitability. The development of specific agonists and antagonists for these receptors has led to a better understanding of their physiology and pharmacology, highlighting their diverse coupling to different intracellular effectors through Gi/G(o) proteins. This review emphasises our current knowledge of the neurophysiology and neurochemistry of GABAB receptors, including their heterogeneity, as well as the therapeutic potential of drugs acting at these sites.

Baclofen↗

Characterization of GABAB ligands in vivo.

1. While GABAB antagonists have been examined in vitro, very few have been tested in vivo. A range of GABAB antagonists were tested against baclofen-induced muscle relaxation and hypothermia. 2. The GABAB antagonists exhibited a range of in vivo activity profiles. 3. CGP 35348 showed clear antagonist effects, while BPBA and 4-ABPA appeared to have agonist properties. 4. Phaclofen, 2-hydroxysaclofen, 3-APPA and 9G seemed to have little effect in this system at the doses tested. 5. Differences between in vivo and in vitro activity could be explained by differences in blood-brain barrier permeability, or possible differences in affinities for the sub-classes of GABAB receptors.

Animals↗

Differing actions of nitropropane analogs of GABA and baclofen in central and peripheral preparations.

In the guinea-pig isolated ileum, both baclofen (5-100 microM) and gamma-aminobutyric acid (GABA; 5-100 microM) induced a bicuculline-insensitive depression of cholinergic twitch contractions which was reversibly and competitively antagonised by 3-amino-1-nitropropane (50-250 microM). 3-Amino-1-nitropropane (pA2 = 5.0 +/- 0.1) was twice as potent as 2-hydroxysaclofen (pA2 = 4.5 +/- 0.1), but was equipotent with 3-aminopropyl(P-diethoxymethyl)phosphinic acid (CGP 35348) (pA2 = 4.9 +/- 0.2), and did not show any partial agonist activity at these peripheral GABAA or GABAB receptor sites. In rat neocortical slices, 3-amino-1-nitropropane did not activate GABAB receptor sites or affect baclofen-induced suppression of spontaneous discharges. In the cat spinal cord, however, under in vivo conditions, the corresponding nitro analog of baclofen 3-amino-2-(4-chloro)-nitropropane was an agonist at GABAB receptor sites, although more than 60 times weaker than baclofen in depressing monosynaptic excitatory field potentials, whereas 3-amino-1-nitropropane was an extremely weak agonist at bicuculline-sensitive GABAA sites. The differing actions of 3-amino-1-nitropropane at peripheral and central GABAB receptor sites suggest heterogeneity among these receptors.

Animals↗

Gamma-guanidinobaclofen is a peripheral GABAB receptor agonist.

In the guinea-pig isolated ileum, both baclofen and gamma-guanidinobaclofen elicited dose-dependent depression of cholinergic twitch contractions, sensitive to the GABAB receptor antagonists phaclofen and 2-hydroxysaclofen. gamma-Guanidinobaclofen was 5 times less potent than R,S-(+/-)-baclofen in depressing the contractions. The corresponding GABA analogs, guanidinoacetic acid, beta-guanidinopropionic acid and gamma-guanidinobutanoic acid were inactive. In rat neocortical slices maintained in Mg(2+)-free medium, baclofen (1-50 microM) reduced the amplitude and rate, whilst gamma-guanidinobaclofen (1 mM) has a very weak GABAB receptor agonist action, 100 times weaker than baclofen. gamma-Guanidinobaclofen is therefore a GABAB receptor agonist, more potent at peripheral than central GABAB receptors.

Animals↗

Suppression of GABAB receptor function in rat neocortical slices by amiloride.

Interactions of amiloride with GABAB receptors have been examined using spontaneously discharging rat neocortical slices. These discharges were suppressed by the GABAB receptor agonist baclofen (10 microM), and were prevented by amiloride and its analogs 5-(N,N-dimethyl)-amiloride, 5-(N-methyl-N-isobutyl)-amiloride and benzamil, but not by triamterene (100-500 microM). Each of these also increased the spontaneous discharge rate and reduced the discharge amplitude. The action of amiloride and its analogs in preventing the action of baclofen, may involve allosteric modification of the receptor binding sites via guanine nucleotide-binding proteins, or an indirect effect through antagonism of co-activated adenosine A1 receptors.

Amiloride↗

3-amino-2-(4-chlorophenyl)-nitropropane is a new GABAB receptor agonist, more active peripherally.

The activity of the nitropropane analog of baclofen, 3-amino-2-(4-chlorophenyl)-nitropropane (N-BAC), has been examined at central and peripheral GABAB receptors. N-BAC was less potent than baclofen as a GABAB receptor agonist in depressing repetitive twitch contractions in the guinea-pig isolated ileum (IC50s for baclofen = 4.1 +/- 1.3 microM; N-BAC = 9.2 +/- 0.3 microM) and vas deferens (IC50s for baclofen = 30 microM; N-BAC = 100 microM), competitively antagonised by phaclofen, 2-hydroxysaclofen and CGP 35348 (3-aminopropyl-P-di-ethoxymethylphosphinic acid). In the ileum, the pA2 values for CGP 35348 with baclofen (4.7 +/- 0.2) and N-BAC (4.6 +/- 0.3) were not significantly different (P > 0.05), indicating that both agonists activate the same receptor type. By contrast, in rat neocortical slices, N-BAC was 20 times weaker than baclofen in attenuating spontaneous discharges, sensitive to CGP 35348, whilst it was 100 times less potent than baclofen in depressing evoked CA1 population spikes in the hippocampus. This new GABAB receptor agonist, N-BAC, is thus more active at peripheral than central GABAB receptors.

Animals↗

R-(-)-beta-phenyl-GABA is a full agonist at GABAB receptors in brain slices but a partial agonist in the ileum.

R-(-)-beta-phenyl-GABA has been compared at GABAB receptors using cortical and ileal preparations. R-(-)-beta-phenyl-GABA (EC50 = 25 microM) was a less potent full agonist than R,S-(+/-)-baclofen (EC50 = 2.5 microM), in depressing CA1 population spikes of rat hippocampal slices, and 5 times less potent in attenuating the spontaneous discharges of rat neocortex. However, R-(-)-beta-phenyl-GABA (100-400 microM) was only a weak partial agonist in the ileum. All these actions were sensitive to CGP 35348 (3-aminopropyl-(P-diethoxymethyl)-phosphinic acid) and therefore mediated by GABAB receptors.

Animals↗

Differing actions of beta-(2-thienyl)-gamma-aminobutyric acid in central and peripheral preparations.

In the guinea-pig isolated ileum, beta-(2-thienyl)-gamma-aminobutyric acid (BTG; 100-500 microM) reversibly and competitively (pA2 = 4.3 +/- 0.1) antagonised the baclofen-induced (5-100 microM) depression of cholinergic twitch contractions, but not that to adenosine or morphine. By contrast, in rat neocortical slice preparations, BTG (100-500 microM) acted as an agonist, abolishing the frequency and amplitude of spontaneous discharges, sensitive to 2-hydroxysaclofen (100-500 microM). BTG exhibits differential actions at GABAB receptors in brain and periphery.

Animals↗

Actions of thienyl analogs of baclofen in the guinea-pig isolated ileum.

In guinea-pig isolated ileal preparations, the 5-methylthien-2-yl (5d), 5-bromothien-2-yl (5f) and 5-chlorothien-2-yl (5h) analogs of baclofen depressed twitch responses to field stimulation in a dose-dependent manner. These actions were reversibly and competitively antagonised by 2-hydroxysaclofen but not by naloxone, phentolamine, propranolol or theophylline. The relative potencies (EC50 values) were baclofen (10 microM) greater than 5h (40 microM) greater than 5d (80 microM) greater than 5f (120 microM). These analogs represent a novel class of specific GABAB receptor agonists which, like baclofen, should readily enter the brain.

Animals↗

Comparison of carbon monoxide and nitrogen induced effects on synaptic transmission in the rat hippocampal slice.

A comparison has been made of the effects of carbon monoxide (CO) or nitrogen (N2) exposure on synaptic transmission in the hippocampal slice. CA1 field potentials, evoked by Schaffer collateral stimulation, were unaffected by superfusion of slices with artificial cerebral spinal fluid (ACSF) equilibrated with either 15% CO or 15% N2 for 120 min. However, superfusion with hypoxic ACSF equilibrated with either 85% CO or 85% N2 caused a rapid depression of synaptic transmission. Reperfusion with control ACSF following 30 min hypoxia led to recovery of evoked responses and a slight hyperexcitability. In the hippocampal slice, synaptic transmission, as assessed by input/output curves, was not different during or following hypoxia induced by exposure to CO or N2. In the short term, CO is not toxic.

Afferent Pathways↗

Short-chain baclofen analogues are GABAB receptor antagonists in the guinea-pig isolated ileum.

A new series of GABAB receptor antagonists, based on short-chain baclofen analogues has been investigated. In guinea-pig isolated ileal preparations, the GABAB receptor-mediated, baclofen-induced depression of cholinergic twitch responses was reversibly and competitively antagonised by the short-chain baclofen analogues 3-amino-3-(p-chlorophenyl)propionic acid (apparent pA2 = 3.5), 2-amino-2-(p-chlorophenyl)ethanephosphonic acid (apparent pA2 = 3.8), and 2-amino-2-(p-chlorophenyl)ethanesulphonic acid apparent pA2 = 4.0). The corresponding des-chloro analogues were all less active. These compounds represent another class of GABAB receptor antagonists which may cross the blood-brain barrier.

Aminoethylphosphonic Acid↗

The actions of 2-hydroxy-saclofen at presynaptic GABAB receptors in the rat hippocampus.

The actions of 2-hydroxy-saclofen (2-OH-S), a recently developed analog of baclofen, were studied at presynaptic GABAB receptors in the rat hippocampal slice. Baclofen (0.5-20 microM) reduces the amplitude of excitatory postsynaptic potentials (EPSPs) recorded from hippocampal CA1 pyramidal neurons. In the presence of 200-500 microM 2-OH-S, the synaptic depressant action of baclofen is significantly reduced. These data show that 2-OH-S is an effective antagonist at presynaptic GABAB receptors on excitatory terminals in the hippocampus.

Animals↗

3-Aminopropanephosphinic acid is a potent agonist at peripheral and central presynaptic GABAB receptors.

The actions of the GABA analog 3-aminopropanephosphinic acid (3-APA) were studied in the guinea-pig isolated ileal preparation and at synapses between cultured rat hippocampal neurons. Like the GABAB receptor agonist, baclofen, 3-APA inhibited the electrically evoked ileal twitch. The EC50 for 3-APA was 0.8 microM; the EC50 for baclofen was 9 microM. In addition, the depressant responses to 3-APA and baclofen were blocked by the GABAB receptor antagonists phaclofen, saclofen, 2-hydroxy-saclofen and delta-aminovaleric acid. 3-APA also mimicked the presynaptic action of baclofen at GABAergic synapses between embryonic rat hippocampal neurons in culture. 3-APA reduced the amplitude of inhibitory postsynaptic potentials (IPSPs) and currents (IPSCs) by greater than 50% at a concentration of 1 microM, while baclofen reduced synaptic transmission to a similar degree at 10 microM. 3-APA did not alter membrane conductance, nor did the drug alter postsynaptic responses to GABA. These data show that 3-APA is a potent agonist at presynaptic GABAB receptors in the periphery and on GABAergic neurons from the central nervous system. The activity of 3-APA at central postsynaptic GABAB receptors remains to be studied.

Amino Acids↗

Inhibition of baclofen binding to rat cerebellar membranes by phaclofen, saclofen, 3-aminopropylphosphonic acid and related GABAB receptor antagonists.

The inhibition of the binding of the GABAB agonist [3H](-)-baclofen to rat cerebellar membranes by some sulfonic and phosphonic acid analogues of GABA has been studied. These analogues have been shown to act as GABAB antagonists in the rat cortical wedge and the guinea-pig isolated ileum preparations. The order of potency of phaclofen (IC50 118 microM), 2-hydroxysaclofen (IC50 5.1 microM) and saclofen (IC50 7.8 microM) as inhibitors of [3H](-)-baclofen binding was similar to the order of potency of these compounds as GABAB antagonists, whereas 3-aminopropylphosphonic acid (IC50 1.5 microM) and 4-aminobutyl-phosphonic acid (IC50 3.9 microM) were much more potent than anticipated from their relatively weak GABAB antagonist actions. These results indicate that inhibition of [3H](-)-baclofen binding to rat cerebellar membranes does not reflect antagonist activity at GABAB receptors seen in the rat cortical wedge preparation or the guinea-pig isolated ileum preparation. This may indicate a heterogeneity of GABAB binding and receptor sites.

Animals↗

Effects of potassium channel blockers on baclofen-induced suppression of paroxysmal discharges in rat neo-cortical slices.

Baclofen reduced the frequency and aborted the bursts of spontaneous paroxysmal discharges in rat neocortical slices maintained in magnesium-free medium. This action was prevented by pretreatment with barium or caesium, which each increased the ictaform burst frequency, amplitude and duration. 4-Amino-pyridine also increased the burst frequency but reduced the amplitude and did not completely prevent the action of baclofen. Evidently baclofen suppresses such discharges by opening potassium channels normally involved in limiting the burst activity.

4-Aminopyridine↗

Differing actions of baclofen and 3-amino-propylphosphinic acid in rat neocortical slices.

Rat neocortical slices maintained in Mg2(+)-free Krebs medium developed spontaneous paroxysmal discharges which were attenuated or suppressed by the gamma-aminobutyric acid-B (GABAB) receptor agonist baclofen, occasionally accompanied by a slight hyperpolarisation, and antagonised by the specific GABAB-receptor antagonist, 2-OH-saclofen. Over the same dose range, the GABA-analogue 3-amino-propylphosphinic acid (3-APA) caused a marked, prompt hyperpolarisation with little or no effect on the frequency of the discharges, although their amplitude was attenuated. In the presence of 2-OH-saclofen, 3-APA still induced a hyperpolarisation but the amplitude of the discharges was no longer affected. This marked difference in action between baclofen and 3-APA in the rat neocortical slices suggests there may be a heterogeneity of GABAB-receptors.

Animals↗